IP Library Granted Patent US 7,352,292
Granted Patent B2
US 7,352,292 · App. 11/336,519 · Granted Apr 1, 2008

Real-time, three-dimensional synthetic vision display of sensor-validated terrain data

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Quick Facts
Patent No.
US 7,352,292
App. No.
11/336,519
Granted
Apr 1, 2008
Kind
B2
Abstract

A terrain database that is rendered in three-dimensional perspective on a Synthetic Vision display in a moving vehicle is updated in real-time in response to data from a ranging sensor. The updated database may be stored and shared with users of displays in other vehicles.

Claims (38)

1. A terrain display system comprising:

a ranging sensor;

a position and attitude sensor;

a terrain database;

a display; and,

a fusion and graphics processor that

combines data from the ranging sensor, the position and attitude sensor, and the terrain database; and,

sends to the display a synthetic image of terrain data that represents terrain as it would appear to an observer located and oriented according to position and attitude data provided by the position and attitude sensor; wherein,

the terrain database is updated in response to data from the ranging sensor.

2. A system as in claim 1 wherein terrain data in the terrain database comprises elevation information for an array of geographical positions that are laid out in a grid.

3. A system as in claim 2 wherein the grid comprises a regularly spaced array of data points.

4. A system as in claim 2 wherein the grid comprises an irregularly spaced array of data points.

5. A system as in claim 2 wherein the processor uses an influence function to adjust and update dynamic terrain data based on sensor data.

6. A system as in claim 5 wherein the influence function is equal to zero for all distances greater than a specified radius, r 0 .

7. A system as in claim 5 wherein the processor updates terrain data in real time.

8. A system as in claim 7 wherein the processor overlays vehicle state symbology on the image sent to the display.

9. A system as in claim 8 further comprising a storage unit for sensor and state data, wherein the storage unit stores range data from the ranging sensor and state data from the position and attitude sensor.

10. A method for updating a terrain database comprising:

providing a ranging sensor, a position and attitude sensor, a terrain database, and a fusion and graphics processor;

initializing the sensors, database, and fusion and graphics processor;

retrieving Synthetic Vision data from the database according to position and attitude data provided by the position and attitude sensor;

using real-time data from the ranging sensor to adjust and update the Synthetic Vision data; and,

repeating the retrieving and using until a signal to stop is received.

11. A method as in claim 10 wherein the terrain database comprises elevation information for an array of geographical positions that are laid out in a grid.

12. A method as in claim 11 wherein an influence function is used to adjust and validate the Synthetic Vision data using real-time data from the ranging sensor.

13. A method as in claim 12 wherein the influence function is equal to zero for all distances greater than a specified radius, r 0 .

14. A system for updating a terrain database comprising:

a ranging sensor;

a position and attitude sensor;

a terrain database;

a display; and,

a fusion and graphics processor that

combines data from the ranging sensor, the position and attitude sensor, and the terrain database;

sends to the display a synthetic image of terrain data; and,

updates the terrain database in response to data from the ranging sensor.

15. A system as in claim 14 wherein no matter how much data is combined from the ranging sensor, the position and attitude sensor, and the terrain database by the fusion and graphics processor, the number of computations performed by the processor to display the synthetic image does not change.

16. A system as in claim 14 wherein the processor uses an influence function to adjust and update dynamic terrain data based on sensor data.

17. A system as in claim 16 wherein the influence function is equal to zero for all distances greater than a specified radius, r 0 .

Assignments (5)
CHANGE OF NAME Recorded Apr 1, 2016
From: MERCURY COMPUTER SYSTEMS, INC.
To: MERCURY SYSTEMS, INC.
Reel/Frame 038333/0331 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 15, 2010
From: AIREYES, INC.
To: BAE SYSTEMS CONTROLS INC.
Reel/Frame 024686/0285 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 15, 2010
From: MERCURY COMPUTER SYSTEMS INC.
To: HONEYWELL INTERNATIONAL INC.
Reel/Frame 024078/0059 →
MERGER Recorded Jan 7, 2008
From: NAV3D CORPORATION
To: MERCURY COMPUTER SYSTEMS, INC.
Reel/Frame 020326/0805 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 7, 2006
From: ALTER, KEITH; BARROWS, ANDREW K; JENNINGS, CHAD; TIANA, CARLO
To: NAV3D CORPORATION; AIREYES, INC.
Reel/Frame 017132/0825 →